Treffer: Combining water and pesticide data with coupled surface/subsurface hydrological modeling to reduce its uncertainty.

Title:
Combining water and pesticide data with coupled surface/subsurface hydrological modeling to reduce its uncertainty.
Contributors:
RiverLy - Fonctionnement des hydrosystèmes (RiverLy), Institut National de Recherche pour l’Agriculture, l’Alimentation et l’Environnement (INRAE), INRS ETE UNIVERSITE DU QUEBEC CAN, Partenaires IRSTEA, Institut national de recherche en sciences et technologies pour l'environnement et l'agriculture (IRSTEA)-Institut national de recherche en sciences et technologies pour l'environnement et l'agriculture (IRSTEA), Université Laval, Canada, EGU, European Project: 869226,DRYvER
Source:
EGU General Assembly 2023, EGU, Apr 2023, Vienna, Austria, Austria. ⟨10.5194/egusphere-egu23-13104⟩
Publisher Information:
CCSD, 2023.
Publication Year:
2023
Collection:
collection:IRSTEA
collection:GIP-BE
collection:TDS-MACS
collection:AGREENIUM
collection:INRAE
collection:INRAE-AQUA
collection:RIVERLY
collection:ZABR
collection:RESEAU-TELEDETECTION-INRAE
collection:RESEAU-EAU
Subject Geographic:
Original Identifier:
HAL: hal-04387867
Document Type:
Konferenz conferenceObject<br />Conference papers
Language:
English
Relation:
info:eu-repo/semantics/altIdentifier/doi/10.5194/egusphere-egu23-13104; info:eu-repo/grantAgreement//869226/EU/Securing biodiversity, functional integrity and ecosystem services in DRYing rivER networks/DRYvER
DOI:
10.5194/egusphere-egu23-13104
Rights:
info:eu-repo/semantics/OpenAccess
Accession Number:
edshal.hal.04387867v1
Database:
HAL

Weitere Informationen

In small agricultural catchments over Europe, intensive use of pesticides leads to widespread contamination of rivers and groundwater, largely due to hydraulic transfers of these reactive solutes from plots to rivers. These transfers must be better understood and described in the watershed in order to be able to propose best management practices adapted to the catchment and to reduce its contamination. The physically based model CATHY simulates interactions between surface and subsurface hydrology and reactive solute transport. However, the high sensitivity of pesticide transfers to spatially heterogeneous soil properties induces uncertainty that should be quantified and reduced. In situ data on pesticides in a catchment are usually rare and not continuous in time and space. Likewise, satellite imagery can provide spatial observations of hydrologic variables but not generally of pesticide fluxes and concentrations, and at limited scale and time frequency. The objective of this work is to combine these 3 types of information (model, in situ data, images) and their associated errors with data assimilation methods, in order to reduce pesticide and hydrological variable uncertainties. The sensitivity to spatial density and temporal frequency of the data will be evaluated, as well as the coupled data assimilation efficiency, i.e., the effect of assimilating hydrological data on pesticide-related variables. The methods will be developed using a Python package, and compared/evaluated on twin experiments using virtual data that are however generated over a real vineyard catchment, in Beaujolais, France, in order to ensure realism of the experiments, data, and associated errors.